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New developments in theoretical thermochemistry and electronic structure applications in supramolecular chemistry and cluster science.

机译:超分子化学和团簇科学中理论热化学和电子结构应用的新发展。

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摘要

In a concise display of the power and diversity of electronic structure theory (EST), the work presented herein involves the development of new computational methods to advance the practical utility of quantum chemistry, as well as solving different types of challenging chemical problems by applying existing EST tools. The research presented is highly interdisciplinary in nature and features synergistic collaborations to solve real-life problems such as regulating toxic chemicals and generating alternative sources of energy.;In the first chapter of this dissertation, the solution to a long-standing problem in theoretical thermochemistry is accomplished by the development of the automated, chemically intuitive and generalized thermochemical hierarchy, Connectivity-Based Hierarchy (CBH) to accurately predict the thermochemical properties of organic molecules. The extension of the hierarchy to predict the enthalpies of formations of biomonomers such as amino acids is also presented.;The development of a computationally efficient protocol to accurately extrapolate to high CCSD(T) energies based on MP2 and DFT energies using CBH is presented in the second chapter, thus merging theoretical thermochemistry with fragment-based methods in quantum chemistry. This merger drastically reduces the computational cost involved in a CCSD(T) calculation, while retaining the impeccable accuracy it offers.;The practical utility of the CH hydrogen bond, commonly thought as being too weak to be used in supramolecular applications has been demonstrated by DFT calculations (along with experimental results from the Flood group) in the third chapter. This is accomplished by systematically studying the binding of monoatomic chloride, diatomic and toxic cyanide and the polyatomic bi-fluoride anions for the first time using only CH hydrogen bonds within a triazolophane macrocycle.;The fourth chapter contains the introduction of the concept of fluxionality in the chemical reactions of transition metal oxide clusters. This is useful to develop a systematic paradigm for discussing the mechanisms in the reactions of larger transition metal oxide clusters with small molecules. Additionally, DFT calculations (along with experimental results from the C. C. Jarrold group) are shown to be useful to provide new insights on hydrogen liberation from water, thus aiding in the generation of alternative sources of energy.
机译:在简要展示电子结构理论(EST)的功能和多样性的过程中,本文介绍的工作涉及开发新的计算方法,以提高量子化学的实用性,以及通过应用现有方法解决不同类型的具有挑战性的化学问题EST工具。提出的研究本质上是跨学科的,具有协同作用,可以解决诸如调节有毒化学物质和产生替代能源等现实生活中的问题。在本论文的第一章中,解决了理论热化学中一个长期存在的问题的解决方案通过开发自动化的,化学直观的和通用的热化学层次结构,即基于连接性的层次结构(CBH),可以准确地预测有机分子的热化学性质。还提出了用于预测诸如氨基酸等生物单体形成的焓的层次结构的扩展。提出了一种基于CBH的基于MP2和DFT能量的精确计算到高CCSD(T)能量的计算有效协议的开发。第二章,将理论热化学与基于片段的方法结合起来。这种合并大大降低了CCSD(T)计算所涉及的计算成本,同时又保持了其无可挑剔的准确性。CH氢键的实用性通常被认为太弱而无法在超分子应用中使用,已得到证明。第三章中的DFT计算(以及Flood组的实验结果)。这是通过首次系统性地研究三唑烷大环内的CH氢键来系统地研究单原子氯离子,双原子和有毒氰化物与多原子双氟化物阴离子的键合而完成的。第四章介绍了C的通量概念。过渡金属氧化物簇的化学反应。这对于开发用于讨论较大的过渡金属氧化物簇与小分子的反应机理的系统范式很有用。此外,DFT计算(连同C. C. Jarrold小组的实验结果)被证明对提供从水中释放氢的新见解非常有用,从而有助于替代能源的产生。

著录项

  • 作者单位

    Indiana University.;

  • 授予单位 Indiana University.;
  • 学科 Chemistry Physical.;Chemistry Organic.;Engineering Materials Science.
  • 学位 Ph.D.
  • 年度 2014
  • 页码 362 p.
  • 总页数 362
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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